MULTI-BAND ANTENNA
A multi-band antenna including a metal plate and a radiation element is provided. The metal plate is electrically connected to a ground plane and has a slot. A resonant path is formed by the edges of the slot. The radiation element has a feeding point and is located in the slot of the metal plate. A feeding signal from the radiation element is coupled to the metal plate, and the multi-band antenna excites a resonant mode by the resonant path of the metal plate, so as to receive or transmit a first radio frequency signal.
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This application claims the priority benefits of U.S. provisional application Ser. No. 61/745,806, filed on Dec. 25, 2012. The entirety of the above-mentioned patent applications is hereby incorporated by reference herein and made a part of this specification.
BACKGROUND OF THE INVENTION1. Field of the Invention
The invention relates to an antenna, and more particularly to a multi-band antenna.
2. Description of Related Art
In wireless capable electronic devices nowadays, such as the notebook computer or the tablet computer, not only is the trend towards a thin and light outer appearance, but an exterior design with metal casing or other metallic materials are adopted to attract consumer attention.
However, although the metallic sense of the exterior design has preferable aesthetics and a more solid appearance, major challenges are presented for antenna design in the electronic device. For example, the configuration of conventional antennas typically must correspond to a clearance area with no metallic materials, and the clearance area is usually far larger than the size of the antenna. However, exterior designs having the metallic sense limits the clearance area needed by the antenna, and thus breakthroughs in the mechanical structure and exterior design of the electronic device remain stagnant.
SUMMARY OF THE INVENTIONThe invention provides a multi-band antenna utilizing the edges of a slot on a metal plate to form a resonant path, and a radiation element located in the slot is used to excite the resonant path on the metal plate. Accordingly, the clearance area needed by the antenna can be reduced while also considering the mechanical structure and the exterior design of the electronic device.
The multi-band antenna includes a metal plate and a radiation element. The metal plate is electrically connected to a ground plane and has a slot. A resonant path is formed by the edges of the slot. The radiation element has a feeding point and is located in the slot of the metal plate. Moreover, a feeding signal from the radiation element is coupled to the metal plate, and the multi-band antenna excites a resonant mode by the resonant path of the metal plate, so as to receive or transmit a first radio frequency signal.
According to an embodiment of the invention, the multi-band antenna further includes a substrate. The substrate is located in the slot of the metal plate, and the radiation element is disposed on the substrate.
According to an embodiment of the invention, the slot penetrates the metal plate, and the slot is a closed slot.
According to an embodiment of the invention, a total length of the edges of the slot is equal to a length of the resonant path, and the length of the resonant path is equal to a wavelength of the first radio frequency signal.
In summary, the multi-band antenna according to embodiments of the invention utilizes the edges of the slot on the metal plate to form a resonant path, and the radiation element located in the slot is used to excite the resonant path on the metal plate. Moreover, the size of the slot on the metal plate is related to the wavelength of the first radio frequency signal, and the slot forms the clearance area of the multi-band antenna. Therefore, in actual applications, the slot (i.e. clearance area) on the metal plate only needs to be slightly larger than the radiation element. Accordingly, the clearance area needed by the antenna can be reduced while also considering the mechanical structure and the exterior design of the electronic device.
To make the above features and advantages of the invention more comprehensible, several embodiments accompanied with drawings are described in detail as follows.
The accompanying drawings are included to provide a further understanding of the invention, and are incorporated in and constitute a part of this specification. The drawings illustrate embodiments of the invention and, together with the description, serve to explain the principles of the invention.
In addition, with regards to the overall configuration, the size of the substrate 140 is configured to correspond to the size of the slot 111 of the metal plate 110, such that the substrate 140 may be inserted in the slot 111. Moreover, the radiation element 120 is disposed on a surface 141 of the substrate 140. Accordingly, the radiation element 120 is positioned in the slot 111 of the metal plate 110 due to the disposition of the substrate 140. For example,
With reference to
An internal conductor of the coaxial wire 150 is electrically connected to the feeding point FP1 of the radiation element 120, and an external conductor of the coaxial wire 150 is electrically connected to the ground plane 130. Moreover, the feeding signal from the radiation element 120 is coupled to the metal plate 110. Accordingly, the multi-band antenna 100 excites a resonant mode by the resonant path of the metal plate 110, so as to receive or transmit a first radio frequency signal. On the other hand, the radiation element 120 generates at least one resonant mode in response to excitation by the feeding signal, such that the multi-band antenna 100 may at least receive or transmit a second radio frequency signal through the radiation element 120.
For example,
In addition,
It should be noted that, the slot 111 on the metal plate 110 is a closed slot. That is, the edges of the slot 111 are continuous and connect to one another without a break. Moreover, a total length of the edges of the slot 111 is equal to a length of the resonant path provided by the metal plate 110, and the length of the resonant path is equal to a wavelength of the first radio frequency signal. In other words, the size of the slot 111 of the metal plate 110 is related to the wavelength of the first radio frequency signal. Therefore, in actual applications, the slot 111 on the metal plate 110 only needs to be slightly larger than the radiation element 120. It should be also noted that, the slot 111 on the metal plate 110 forms the clearance area of the multi-band antenna 100. Therefore, compared to conventional techniques, the multi-band antenna 100 can efficiently reduce the clearance area needed by the antenna.
In addition, although the embodiment depicted in
In addition, as shown in
It should be noted that, the multi-band antenna 100 exemplified in the afore-described embodiments may be disposed in an electronic device, and the metal plate 110 may be a casing of the electronic device. For example, the electronic device may be a desktop computer, a notebook computer, a tablet computer, or a smart phone. For the desktop computer, the notebook computer, or the tablet computer, the metal plate 110 of the multi-band antenna 100 may be located in the metal back cover behind the display panel. On the other hand, for the smart phone, the metal plate 110 of the multi-band antenna 100 may be the metal casing of the smart phone.
In view of the foregoing, the multi-band antenna according to embodiments of the invention utilizes the edges of the slot on the metal plate to form a resonant path, and the radiation element located in the slot is used to excite the resonant path on the metal plate. Accordingly, the multi-band antenna is capable of not only generating a resonant mode by the resonant path on the metal plate, but also generating at least another resonant mode by the radiation element, thereby achieving multi-band operation. Moreover, the size of the slot on the metal plate is related to the wavelength of the first radio frequency signal, and the slot forms the clearance area of the multi-band antenna. Therefore, in actual applications, the slot (i.e. clearance area) on the metal plate only needs to be slightly larger than the radiation element. Accordingly, the clearance area needed by the antenna can be reduced while also considering the mechanical structure and the exterior design of the electronic device.
Although the invention has been described with reference to the above embodiments, it will be apparent to one of ordinary skill in the art that modifications to the described embodiments may be made without departing from the spirit of the invention. Accordingly, the scope of the invention will be defined by the attached claims and not by the above detailed descriptions.
Claims
1. A multi-band antenna, comprising:
- a metal plate electrically connected to a ground plane, the metal plate having a slot, wherein a resonant path is formed by the edges of the slot; and
- a radiation element having a feeding point and is located in the slot of the metal plate, wherein a feeding signal from the radiation element is coupled to the metal plate, and the multi-band antenna excites a resonant mode by the resonant path of the metal plate so as to receive or transmit a first radio frequency signal.
2. The multi-band antenna according to claim 1, further comprising:
- a substrate located in the slot of the metal plate, wherein the radiation element is disposed on the substrate.
3. The multi-band antenna according to claim 1, wherein the ground plane is adhered on the metal plate.
4. The multi-band antenna according to claim 1, wherein the slot penetrates the metal plate, and the slot is a closed slot.
5. The multi-band antenna according to claim 1, wherein a total length of the edges of the slot is equal to a length of the resonant path.
6. The multi-band antenna according to claim 1, wherein a length of the resonant path is equal to a wavelength of the first radio frequency signal.
7. The multi-band antenna according to claim 1, wherein the multi-band antenna at least receives a second radio frequency signal through the radiation element, and a frequency of the second radio frequency signal is greater than a frequency of the first radio frequency signal.
8. The multi-band antenna according to claim 1, further comprising:
- a coaxial wire, wherein an internal conductor of the coaxial wire is electrically connected to the feeding point of the radiation element, and an external conductor of the coaxial wire is electrically connected to the ground plane.
9. The multi-band antenna according to claim 1, wherein the multi-band antenna is disposed in an electronic device, and the metal plate is a casing of the electronic device.
Type: Application
Filed: Nov 7, 2013
Publication Date: Jun 26, 2014
Applicant: COMPAL ELECTRONICS, INC. (Taipei City)
Inventors: Yen-Hao Yu (Taipei City), Chieh-Tsao Hwang (Taipei City), Shih-Chia Liu (Taipei City)
Application Number: 14/074,649
International Classification: H01Q 5/00 (20060101); H01Q 13/10 (20060101);